Temperature control method and device, equipment, storage medium and program product

By responding to temperature zone synchronization commands in the vehicle's air conditioning system, customizing the selected temperature zone to be followed and its synchronized temperature zone, and dynamically adjusting according to the temperature of adjacent temperature zones, the problem of insufficient flexibility in temperature zone control in existing technologies is solved, thus improving the user experience.

CN121928933APending Publication Date: 2026-04-28AVATR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
AVATR CO LTD
Filing Date
2026-02-04
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing vehicle air conditioning systems lack flexibility in temperature zone control, making it impossible to flexibly select synchronized temperature zones, resulting in a poor user experience in certain scenarios.

Method used

By responding to the temperature zone synchronization command, the system determines the first temperature zone to be followed and its synchronized second temperature zone, obtains the operating parameters of the first temperature zone, synchronizes and configures the operating parameters of the second temperature zone, detects whether there is an adjacent third temperature zone, and adjusts the second temperature zone according to the control temperature of the third temperature zone.

Benefits of technology

It enables more flexible and precise temperature zone linkage control, improves the user experience, and avoids local discomfort caused by temperature changes in adjacent temperature zones.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a temperature control method and device, computer equipment, a computer readable storage medium and a computer program product. The method comprises the steps of determining a followed first temperature zone and at least one second temperature zone synchronized with the first temperature zone in response to a temperature zone synchronization instruction, obtaining current operation parameters of a temperature control assembly corresponding to the first temperature zone, and then synchronously configuring operation parameters of the temperature control assembly corresponding to the second temperature zone according to the current operation parameters corresponding to the first temperature zone, and after the operation parameters of the temperature control assembly corresponding to the second temperature zone are synchronously configured, if a third temperature zone adjacent to the second temperature zone is detected, the temperature control assembly corresponding to the second temperature zone is adjusted according to the control temperature of the third temperature zone.
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Description

Technical Field

[0001] This application relates to vehicle control technology, and more particularly to a temperature control method, device, computer equipment, computer-readable storage medium, and computer program product. Background Technology

[0002] Modern vehicle air conditioning systems are typically equipped with multiple temperature zone controls to meet the individual temperature needs of different passengers. In some scenarios, users prefer that the temperatures in different zones be synchronized, such as maintaining the same temperature settings between the driver's and passenger's areas, thereby improving ease of use and comfort.

[0003] In related technologies, vehicles typically can only synchronize the temperature of all areas with one click, or the air conditioning in each area can operate independently.

[0004] Therefore, the related technologies suffer from poor control flexibility. Summary of the Invention

[0005] This application provides a temperature control method, apparatus, computer equipment, computer-readable storage medium, and computer program product, which can improve control flexibility.

[0006] The technical solution of this application embodiment is implemented as follows: In a first aspect, embodiments of this application provide a temperature control method, the method comprising: In response to a temperature zone synchronization command, a first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone are determined; Obtain the current operating parameters of the temperature control component corresponding to the first temperature zone; The operating parameters of the temperature control component corresponding to the second temperature zone are configured synchronously according to the current operating parameters of the first temperature zone. After the operating parameters of the temperature control component corresponding to the second temperature zone are synchronized and configured, if a third temperature zone adjacent to the second temperature zone is detected, the temperature control component corresponding to the second temperature zone is adjusted according to the control temperature of the third temperature zone.

[0007] Secondly, embodiments of this application provide a temperature control device, comprising: The synchronization determination module is used to determine the first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone in response to the temperature zone synchronization command. The parameter acquisition module is used to acquire the current operating parameters of the temperature control component corresponding to the first temperature zone; The synchronous configuration module is used to synchronously configure the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters of the first temperature zone. The adjustment module is used to adjust the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone after the operating parameters of the temperature control component corresponding to the second temperature zone have been synchronously configured.

[0008] Thirdly, embodiments of this application provide a computer device, including a memory and a processor. The memory stores a computer program that can run on the processor, and the processor executes the computer program to implement the steps in any of the above methods.

[0009] Fourthly, embodiments of this application provide a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps in any of the above methods.

[0010] Fifthly, embodiments of this application provide a computer program product, including a computer program or instructions, which, when executed by a processor, implement the steps of any of the methods described above.

[0011] The embodiments of this application have the following beneficial effects: The temperature control scheme provided in this application includes, but is not limited to, a temperature control method, apparatus, computer equipment, computer-readable storage medium, and computer program product. The temperature control method includes at least the following steps: in response to a temperature zone synchronization command, determining a first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone; acquiring the current operating parameters of the temperature control component corresponding to the first temperature zone; then, synchronously configuring the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters of the first temperature zone; after the operating parameters of the temperature control component corresponding to the second temperature zone have been synchronously configured, if a third temperature zone adjacent to the second temperature zone is detected, adjusting the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone.

[0012] In this way, on the one hand, the customizable selection of the first temperature zone to be followed and multiple second temperature zones synchronized with it offers greater flexibility compared to the rigid control methods in related technologies that only allow for one-click synchronization of temperatures across all zones, or independent operation of air conditioning in each zone. On the other hand, after configuring the operating parameters of the second temperature zone by synchronizing the operating parameters of the first temperature zone, the system detects the existence of a third temperature zone adjacent to the second temperature zone. It is understood that the operating parameters of this third temperature zone may be the same as or different from those of the first and second temperature zones. To avoid localized discomfort caused by temperature changes in adjacent temperature zones, the second temperature zone is dynamically adjusted based on the control temperature of the adjacent third temperature zone when its existence is detected, further improving the coordination of overall temperature control and user experience. Compared to the control methods in related technologies that only allow for full-vehicle synchronization or completely independent operation, this solution achieves more flexible and refined temperature zone linkage control.

[0013] It should be understood that the above general description and the following detailed description are merely exemplary and explanatory, and are not intended to limit the technical solutions of this application. Attached Figure Description

[0014] Figure 1 A schematic diagram of the implementation process of a temperature control method provided in this application embodiment. Figure 1 ; Figure 2 An exemplary current display interface layout structure diagram provided for embodiments of this application; Figure 3 A schematic diagram of the implementation process of a temperature control method provided in this application embodiment. Figure 2 ; Figure 4 This is a schematic diagram of the composition structure of a temperature control device provided in an embodiment of this application; Figure 5 This is a schematic diagram of the hardware entity of a computer device provided in an embodiment of this application.

[0015] It should be noted that the terms "first" and "second" mentioned above are only used to distinguish between different options and do not represent the degree of superiority or inferiority of the options or their priority in the implementation process. Detailed Implementation

[0016] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application are further described in detail below with reference to the accompanying drawings and embodiments. The described embodiments should not be regarded as limitations on this application. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0017] In the following description, references to "some embodiments" refer to a subset of all possible embodiments. It is understood that "some embodiments" may be the same or different subsets of all possible embodiments and may be combined with each other without conflict. The terms "first / second / third" are used merely to distinguish similar objects and do not represent a specific ordering of objects. It is understood that "first / second / third" may be interchanged in a specific order or sequence where permitted, so that the embodiments of this application described herein can be implemented in an order other than that illustrated or described herein.

[0018] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains. The terminology used herein is for descriptive purposes only and is not intended to limit the scope of this application.

[0019] Currently, smart vehicles on the market divide the in-vehicle environment into multiple different temperature zones, and different control strategies can be implemented for different temperature zones. In some scenarios, it is necessary to control multiple temperature zones synchronously. However, most related technologies adopt one-click temperature zone synchronization, which synchronizes all temperature zones with the driver's side when activated, and it is not possible to select individual temperature zones or synchronize any temperature zone individually.

[0020] However, the synchronous control method in related technologies is too inflexible and not applicable to all scenarios. For example, when a family is on a road trip, the outdoor sun is strong and the temperature is high. The sunshades on the rear roof and side windows are closed, while the front seats are exposed to direct sunlight through the windshield, resulting in a large temperature difference between the front and rear seats. In this situation, the rear passengers have already adjusted the temperature and airflow to a very comfortable level. The driver feels that the front seats are too hot, so it is only necessary to adjust the front seat temperature to lower the temperature of the driver and passenger seats. That is, it is only necessary to cool down the corresponding temperature zones of the driver and passenger seats in the front seats simultaneously, without needing to adjust the temperature of the rear seat temperature zone.

[0021] Therefore, the control methods in related technologies suffer from poor control flexibility.

[0022] In view of this, this application provides a temperature control method, apparatus, computer device, computer-readable storage medium, and computer program product. The temperature control method includes at least the following steps: in response to a temperature zone synchronization command, determining a first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone; acquiring the current operating parameters of a temperature control component corresponding to the first temperature zone; then, synchronously configuring the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters of the first temperature zone; after the operating parameters of the temperature control component corresponding to the second temperature zone have been synchronously configured; if a third temperature zone adjacent to the second temperature zone is detected, adjusting the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone.

[0023] In this way, on the one hand, the customizable selection of the first temperature zone to be followed and multiple second temperature zones synchronized with it offers greater flexibility compared to the rigid control methods in related technologies that only allow for one-click synchronization of temperatures across all zones, or independent operation of air conditioning in each zone. On the other hand, after configuring the operating parameters of the second temperature zone by synchronizing the operating parameters of the first temperature zone, the system detects the existence of a third temperature zone adjacent to the second temperature zone. It is understood that the operating parameters of this third temperature zone may be the same as or different from those of the first and second temperature zones. To avoid localized discomfort caused by temperature changes in adjacent temperature zones, the second temperature zone is dynamically adjusted based on the control temperature of the adjacent third temperature zone when its existence is detected, further improving the coordination of overall temperature control and user experience. Compared to the control methods in related technologies that only allow for full-vehicle synchronization or completely independent operation, this solution achieves more flexible and refined temperature zone linkage control.

[0024] This application provides a driving style recognition method. This method can be applied to a computer device, which can be any vehicle, and the method can be executed by the vehicle's processor. The vehicle can be an intelligent vehicle with data processing capabilities, including but not limited to: sedans, sports cars, SUVs, commercial vehicles, engineering vehicles, etc.

[0025] Figure 1 A schematic diagram of the implementation process of a temperature control method provided in this application embodiment. Figure 1 ,like Figure 1 As shown, the method includes the following steps S101 to S104: Step S101: In response to the temperature zone synchronization command, determine the first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone.

[0026] Here, "temperature zone" can refer to, but is not limited to, multiple independent temperature-controlled areas within the vehicle, such as the driver's seat, front passenger seat, and rear left and right seats. Each temperature zone can be controlled by its corresponding temperature control component, which can be, but is not limited to, the air conditioning system.

[0027] Here, the temperature zone synchronization command can be a command used to instruct at least one temperature zone to follow a certain temperature zone for temperature synchronization control. In the embodiments of this application, the temperature zone synchronization command may include, but is not limited to, the temperature zone identifier of the first temperature zone and the identifiers of each second temperature zone.

[0028] Here, the first temperature zone can be the temperature zone being followed, and the second temperature zone is at least one temperature zone that needs to be synchronized with the first temperature zone.

[0029] In one possible implementation, the user-inputted temperature zone synchronization command can be obtained in real time through an external input device, such as a display screen or buttons installed on the vehicle.

[0030] In this embodiment of the application, the process of obtaining the temperature zone synchronization command input by the user may include the following: obtaining the temperature zone information of the first temperature zone and the temperature zone information of the second temperature zone input by the user through the temperature zone selection control on the current display interface; obtaining the synchronization command input by the user through the synchronization control control on the current display interface; and generating the temperature zone synchronization command based on the temperature zone information of the first temperature zone, the temperature zone information of the second temperature zone, and the synchronization command.

[0031] In this embodiment, the vehicle can be connected to a display screen, through which user input information for generating temperature zone synchronization commands can be obtained. Information displayed on the display screen can be found by referring to... Figure 2 , Figure 2 This is an exemplary current display interface layout structure diagram provided for an embodiment of this application.

[0032] Here, the temperature zone information may be, but is not limited to, the location or identification of the temperature zone in the vehicle. The location of the temperature zone in the vehicle may be, but is not limited to, driver's seat, front passenger seat, second row left, second row middle, second row right, third row, etc., and the identification may be a unique identifier that marks each temperature zone.

[0033] In this embodiment of the application, when the user triggers the temperature zone synchronization setting condition, he / she can enter the current display interface 200. The current display interface 200 may include at least a temperature zone selection control 210, a synchronization control control 220, a synchronization trigger control 230, and other controls 240 with other functions.

[0034] In this embodiment, the vehicle can display a temperature zone selection control 210 on the current display interface 200. The temperature zone selection control 210 includes multiple sub-controls, each corresponding to the temperature zone information of a specific temperature zone. The user can trigger different sub-controls to input selection instructions corresponding to different temperature zone information. These selection instructions may include temperature zone information for a first temperature zone and temperature zone information for a second temperature zone. In this embodiment, the first and second temperature zones can be distinguished according to the triggering order of the sub-controls. For example, the temperature zone corresponding to the first triggered sub-control can be designated as the first temperature zone, and the temperature zones corresponding to subsequently triggered sub-controls can be designated as the second temperature zone.

[0035] In this embodiment of the application, the temperature zone synchronization setting conditions may include, but are not limited to, clicking the synchronization trigger control 230 or inputting a synchronization trigger command.

[0036] Here, to avoid accidental triggering, the user also needs to input a synchronization command. The synchronization command can be used to instruct the previously input second temperature zone to follow the first temperature zone for synchronized temperature control. In this embodiment, the user can input the synchronization command by clicking the synchronization control control 220.

[0037] In this way, based on the obtained temperature zone information of the first temperature zone, the temperature zone information of the second temperature zone, and the synchronization command, a temperature zone synchronization command can be generated.

[0038] In the above embodiments, by setting a temperature zone selection control on the current display interface, users can flexibly select the synchronization object according to actual needs. Based on the synchronization control, the synchronization function is started after the synchronization command is generated, and the action of confirmation can minimize the misselection or omission of temperature zones and improve control accuracy.

[0039] In another possible implementation, internally generated temperature zone synchronization commands can be obtained.

[0040] In some examples, the temperature zone synchronization command can be associated with the currently logged-in user account information. It is understandable that different users have different preferences for air conditioning synchronization, and the temperature zone synchronization command can be automatically generated based on the preference information corresponding to different user account information.

[0041] Here, user account information may refer to, but is not limited to, the user's identity identifier, username, etc., currently logged into the vehicle control system. This user account information can uniquely identify the user. Preference information may be the recorded vehicle operation information based on the user account information during login.

[0042] In some examples, user account information is associated with the temperature zone synchronization information from the last login. When the user account information is logged in again, the temperature zone synchronization information from the last login can be retrieved, thereby actively generating the corresponding temperature zone synchronization command.

[0043] In this embodiment of the application, the process of generating a temperature zone synchronization instruction based on the temperature zone synchronization information associated with the currently logged-in user account information may include: generating a current synchronization control relationship based on the temperature zone information corresponding to the first temperature zone and the temperature zone information corresponding to the second temperature zone; obtaining the currently logged-in user account information; updating the synchronization control relationship bound to the user account information based on the current synchronization control relationship. The synchronization control relationship bound to the user account information is used to generate a temperature zone synchronization instruction after the user account information logs in.

[0044] In this embodiment, when the vehicle is in operation, the temperature information of the first temperature zone and the temperature information of each second temperature zone input by the user can be recorded, and a corresponding current synchronization control relationship can be generated. This current synchronization control relationship is used to represent the first temperature zone and each second temperature zone that are being synchronized at the current moment. Before the user account information goes offline, the user account information is associated with and bound to the current synchronization control relationship. In this way, when the user account information logs in again, it can actively generate a temperature zone synchronization command based on the synchronization control relationship bound to the user account information, thereby improving the user experience.

[0045] In some embodiments, when generating the current synchronization control relationship, the operating parameters of the temperature controls for the first and second temperature zones can also be recorded. This way, when the user account information logs in again, not only can the user proactively generate temperature zone synchronization commands based on the synchronization control relationship bound to the user account information, but the operating parameters of the temperature controls corresponding to the first and second temperature zones can also be configured using the operating parameters corresponding to the synchronization control relationship. It is understood that these operating parameters include, but are not limited to, parameters related to various dimensions such as air conditioner on / off status, temperature value, fan speed, and whether automatic mode is enabled.

[0046] In the above embodiments, a current synchronization control relationship is generated based on the temperature zone information corresponding to the first temperature zone and the temperature zone information corresponding to the second temperature zone. This current synchronization control relationship is then associated and bound with the currently logged-in user account information. This allows the system to proactively generate synchronization control commands based on this synchronization control relationship when the user logs in again, thereby enabling personalized proactive temperature zone synchronization settings and improving the human-vehicle interaction experience and overall satisfaction.

[0047] Step S102: Obtain the current operating parameters of the temperature control component corresponding to the first temperature zone.

[0048] Here, the current operating parameters may refer to, but are not limited to, the various settings currently being set by the temperature control component corresponding to the first temperature zone, including but not limited to, the current control temperature, airflow, mode (cooling / heating / ventilation), and whether the automatic operation mode is enabled. In this embodiment, the current operating parameters characterize the current temperature regulation behavior of the temperature control component corresponding to the first temperature zone.

[0049] Here, the current control temperature is used to characterize the temperature that the temperature control component corresponding to the first temperature zone needs to control, and it is a configured parameter.

[0050] In some examples, the current operating parameters of the temperature control component corresponding to the first temperature zone can be obtained from the default storage location; in other examples, the current operating parameters of the temperature control component corresponding to the first temperature zone can be read in real time.

[0051] Step S103: Synchronously configure the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters of the first temperature zone.

[0052] Here, synchronous configuration refers to the configuration operation of copying the current operating parameters of the temperature control component corresponding to the first temperature zone and applying them to the temperature control component corresponding to the second temperature zone. For example, if the current control temperature of the temperature control component corresponding to the first temperature zone is set to 26°C and it is in cooling mode, then the temperature control component corresponding to the second temperature zone will also be set to 26°C and the mode will be adjusted to cooling mode, etc.

[0053] In some examples, the current operating parameters corresponding to the first temperature zone can be directly applied to the temperature control component corresponding to the second temperature zone.

[0054] In some examples, there may be hardware differences between the temperature control components corresponding to the first temperature zone and the temperature control components corresponding to the second temperature zone. Therefore, in this embodiment, a mapping relationship can be generated based on the differences between the temperature control components corresponding to the first temperature zone and the temperature control components corresponding to the second temperature zone. Based on this mapping relationship, the current operating parameters corresponding to the first temperature zone can be mapped to obtain operating parameters that can be applied to the temperature control components in the second temperature zone. The operating parameters of the temperature control components corresponding to the second temperature zone can then be configured based on the mapped operating parameters.

[0055] Step S104: After the operating parameters of the temperature control component corresponding to the second temperature zone are synchronized and configured, if a third temperature zone adjacent to the second temperature zone is detected, the temperature control component corresponding to the second temperature zone is adjusted according to the control temperature of the third temperature zone.

[0056] Here, the third temperature zone may refer to a temperature zone other than the first temperature zone that is physically close to the second temperature zone. For example, the second row left is one of the second temperature zones, and the second row middle, driver's seat, or third row left may be considered as temperature zones adjacent to the second row left. When these adjacent temperature zones are neither the first nor the second temperature zone, these temperature zones are determined to be the third temperature zone.

[0057] It is understandable that changes in the control temperature of the third temperature zone may affect the temperature control effect of the second temperature zone after synchronous configuration. For example, if the control temperature of the corresponding temperature control component of the second temperature zone is set to 21 degrees after synchronous configuration, while the control temperature of the third temperature zone is set to 26 degrees, the difference between the two is too large, which may cause the temperature of the third temperature zone to affect the temperature of the second temperature zone, for example, it may be unable to cool down to 21 degrees.

[0058] Therefore, in this embodiment of the application, in order to avoid the adjacent third temperature zone affecting the control of the temperature control component corresponding to the second temperature zone, when the existence of the third temperature zone is detected, the temperature control component corresponding to the synchronously configured second temperature zone can be adjusted according to the control temperature of the third temperature zone.

[0059] In one possible implementation, the difference in controlled temperature between the third temperature zone and the second temperature zone is calculated. Based on this difference, the operating parameters of the temperature control component in the second temperature zone can be adjusted. It is understood that these operating parameters are the operating parameters on which the temperature control component in the second temperature zone is currently operating.

[0060] In another possible implementation, the current operating parameters of the temperature control component corresponding to the third temperature zone are obtained, and the operating parameters of the temperature control component of the second temperature zone are adjusted based on the difference between the current operating parameters of the third temperature zone and the operating parameters corresponding to the second temperature zone.

[0061] In the above embodiments, on the one hand, the custom selection of the first temperature zone to be followed and multiple second temperature zones synchronized with it offers greater flexibility compared to the rigid control methods in related technologies that only allow for one-click synchronization of temperatures across all zones, or independent operation of air conditioning in each zone. On the other hand, after configuring the operating parameters of the second temperature zone by synchronizing the operating parameters of the first temperature zone, the system detects the presence of a third temperature zone adjacent to the second temperature zone. It is understood that the operating parameters of this third temperature zone may be the same as or different from those of the first and second temperature zones. To avoid localized discomfort caused by temperature changes in adjacent temperature zones, the second temperature zone is dynamically adjusted based on the control temperature of the adjacent third temperature zone when the presence of a third temperature zone is detected, further improving the overall coordination of temperature control and user experience. Compared to the control methods in related technologies that only allow for full vehicle synchronization or completely independent operation, this solution achieves more flexible and refined temperature zone linkage control.

[0062] In some embodiments, when the temperature control components corresponding to each temperature zone undergo a state switching action, the following steps are also performed: when a state switching of the temperature control components corresponding to each temperature zone is detected, in response to an adjustment command to adjust the temperature control components corresponding to any temperature zone, the target temperature zone corresponding to the adjustment command is determined according to the adjustment command; if the target temperature zone is not the first temperature zone, the synchronous control relationship corresponding to each temperature zone is initialized; if the target temperature zone is the first temperature zone, the operating parameters of the temperature control components corresponding to each second temperature zone are synchronously configured according to the current operating parameters corresponding to the first temperature zone.

[0063] Here, the state switching of the temperature control component may refer to, but is not limited to, switching from the power-on running state to the standby state.

[0064] Understandably, when this state is switched, the operating parameters of the temperature control components corresponding to each temperature zone are the initial parameters. At this time, if an adjustment command is received to adjust the temperature control component corresponding to any temperature zone, it is necessary to detect the synchronization control relationship between each temperature zone, and then configure the operating parameters of the temperature control components corresponding to each temperature zone accordingly.

[0065] Here, the adjustment command may refer to, but is not limited to, a command to adjust the parameters of the temperature control component corresponding to a certain temperature zone. In this embodiment of the application, the adjustment command input by the user can be received through the human-machine interface. The parameters to be adjusted by the adjustment command may be, but are not limited to, adjusting the temperature value, air volume, mode (air supply / cooling / heating), automatic on / off, etc.

[0066] Understandably, the adjustment command will target a specific temperature zone. In this embodiment, the specific temperature zone is the target temperature zone. Here, the target temperature zone can refer to the temperature zone where the adjustment command is applied, and it can be any temperature zone among all temperature zones.

[0067] In this embodiment of the application, after the target temperature zone is determined, it can be detected whether the target temperature zone is the first temperature zone that has been set to be synchronously followed.

[0068] It is understandable that when the target temperature zone is not the first temperature zone, it can be determined that the user needs to release the synchronization control relationship. The second temperature zone does not need to synchronize its operating parameters with the temperature control component of the first temperature zone. Based on this, in this embodiment, if the target temperature zone is not the first temperature zone, the synchronization control relationship corresponding to each temperature zone is initialized. Here, initializing the synchronization control relationship means clearing all existing synchronization control relationships and rebuilding them to the default state, which is usually an unsynchronized state. The significance of this step of initializing the synchronization control relationship is that when the user adjusts a temperature zone other than the first temperature zone, they will not mistakenly believe that this is part of a synchronized operation, but rather that the adjustment behavior is regarded as an independent adjustment behavior.

[0069] In this embodiment of the application, when the target temperature zone is the first temperature zone, the adjustment command can be regarded as a step in the synchronous configuration. Therefore, the step of synchronously configuring the operating parameters of the temperature control components corresponding to each second temperature zone according to the current operating parameters corresponding to the first temperature zone can be executed so that the operating parameters of the temperature control components corresponding to each second temperature zone that have a synchronous control relationship with the first temperature zone are consistent with the operating parameters of the temperature control components corresponding to the first temperature zone.

[0070] In the above embodiments, when a state switch is detected in the temperature control components corresponding to each temperature zone, in response to the adjustment command to adjust the temperature control components corresponding to any temperature zone, it detects whether the target temperature zone is the first temperature zone, which can accurately respond to the user's actual intention and ultimately realize a multi-temperature zone synchronous control function with personalization and flexibility to meet the specific needs of different usage scenarios.

[0071] In some embodiments, the temperature control method provided in this application may further include the following steps: in response to a target function selection instruction, detecting the synchronization control relationship between each temperature zone; if there is at least one independent temperature zone that does not have a synchronization control relationship with other temperature zones in each temperature zone, generating an overall synchronization instruction based on the temperature zone information corresponding to each temperature zone; and controlling the functional components corresponding to each temperature zone to execute the target function corresponding to the target function selection instruction based on the overall synchronization instruction and the target function selection instruction.

[0072] Here, the target function selection command may refer to, but is not limited to, a command issued by the user through interface operation, voice control, or preset trigger conditions, intending to perform a specific function. In the embodiments of this application, these functions may include, but are not limited to, one-button ventilation, rapid heating and cooling, manual air purification, and automatic air purification temperature zone simultaneous operation.

[0073] It is understandable that when there is a synchronous control relationship between the second temperature zone and the first temperature zone, when the functional components corresponding to the first temperature zone are performing their respective functions, the functional components of the second temperature zone can also perform their respective functions synchronously. However, there are some target functions that require all temperature zones to perform synchronously, such as the rapid heating and cooling function. Therefore, when the specific function pointed to by the target function selection instruction is a target function that requires all temperature zones to perform synchronously, it is necessary to detect the synchronous control relationship between the temperature zones.

[0074] In one possible implementation, if at least one temperature zone lacks a synchronous control relationship with other temperature zones, an overall synchronization command can be generated based on the information of each temperature zone to uniformly adjust the state of all temperature zones. Here, the overall synchronization command can refer to a control command for uniformly adjusting the synchronous state of all temperature zones. In this embodiment, when executing the target function pointed to by the target function selection command, the overall synchronization command can ensure that all relevant temperature zones respond in a coordinated manner.

[0075] After detecting the synchronization control relationship and generating the overall synchronization command, the synchronization control relationship between each temperature zone can be established based on the overall synchronization command. Then, based on the target function selection command, the functional components within each temperature zone are controlled so that each functional component executes the target function according to the requirements of the target function selection command. Here, the functional components may include, but are not limited to, air conditioning compressors, fan motors, temperature sensors, air circulation mode controllers, etc.

[0076] In the above embodiments, for the target function that needs to be executed synchronously, the synchronization control relationship between each temperature zone is detected, the current synchronization state of each temperature zone is accurately identified, and the existence of independent temperature zones is avoided. After adjusting the synchronization control relationship between each temperature zone, the functional components of each temperature zone are controlled to point to the corresponding target function according to the target function selection instruction, thereby realizing efficient and coordinated multi-temperature zone control.

[0077] Figure 3 A schematic diagram of the implementation process of a temperature control method provided in this application embodiment. Figure 2 In this embodiment of the application, the current operating parameters corresponding to the first temperature zone include at least the current control temperature of the temperature control component corresponding to the first temperature zone, such as... Figure 3 As shown, step S104 above, "If a third temperature zone adjacent to the second temperature zone is detected, adjust the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone," may include the following steps: Step S1041: If a third temperature zone adjacent to the second temperature zone is detected, determine the temperature difference between the control temperature of the first temperature zone and the control temperature of the third temperature zone.

[0078] Step S1042: Adjust the current operating parameters of the temperature control component corresponding to the second temperature zone according to the temperature difference.

[0079] Here, the temperature difference can refer to the difference between the control temperature of the first temperature zone and the control temperature of the third temperature zone. The temperature difference can be used to assess whether the temperature difference between the second and third temperature zones after synchronization is large, thereby determining whether to adjust the current operating parameters of the temperature control component corresponding to the second temperature zone, so as to reduce the impact of the adjacent third temperature zone on the temperature of the second temperature zone.

[0080] In one possible implementation, it can be detected whether the temperature difference is greater than a preset threshold. If it is, the current operating parameters of the temperature control component corresponding to the second temperature zone are adjusted based on the set adjustment parameters. Here, the set adjustment parameters can be, but are not limited to, a value used to adjust the degree of change of operating parameters. For example, after synchronizing the control temperature of the first temperature zone, the current operating parameters of the second temperature zone include a control temperature of 21°C, while the control temperature of the third temperature zone is 26°C, and the temperature difference is 5°C, which exceeds the preset threshold of 2°C. At this time, the control temperature of the second temperature zone is adjusted to 19°C based on the preset adjustment parameter of 2°C.

[0081] In another possible implementation, the process of step S1042, "adjusting the current operating parameters of the temperature control component corresponding to the second temperature zone according to the temperature difference," may include the following steps: Step S1421: Determine the first adjustment parameter based on the temperature difference and the current operating parameters of the first temperature zone.

[0082] The first adjustment parameter includes at least the adjusted supply air temperature and the adjusted air volume. Step S1422: Adjust the operating parameters of the temperature control component corresponding to the second temperature zone according to the first adjustment parameter.

[0083] Here, the first adjustment parameter can refer to a parameter value determined based on the temperature difference and the current operating parameters of the first temperature zone, which is the value expected to be achieved after adjusting the operating parameters of the temperature control component corresponding to the second temperature zone. It is understood that the first adjustment parameter corresponds to the adjustable operating parameters of the temperature control component corresponding to the second temperature zone. In the embodiments of this application, the first adjustment parameter may include, but is not limited to, the adjusted supply air temperature and the adjusted air volume. In some examples, the first adjustment parameter may also include the opening angle of the air conditioning outlet, the controlled temperature, etc.

[0084] In the above embodiments, a first adjustment parameter is introduced based on the temperature difference and the current operating parameters of the first temperature zone, and the first adjustment parameter is applied to the adjustment of the operating parameters of the temperature control component, thereby realizing dynamic temperature balance control of multiple temperature zones in the cabin.

[0085] Regarding the process of determining the first adjustment parameter, in one possible implementation, the temperature difference and the current operating parameters of the first temperature zone can be input into the parameter generation model to obtain the first adjustment parameter.

[0086] In another possible implementation, the process of determining the first adjustment parameter may include: determining a temperature adjustment value based on the temperature difference, and determining the first adjustment parameter based on the temperature adjustment value and the current operating parameters of the first temperature zone, wherein the magnitude of the temperature adjustment value is proportional to the magnitude of the temperature difference.

[0087] Here, the temperature adjustment value may, but is not limited to, refer to a value determined based on the temperature difference for adjusting the operating state of the air conditioning system. In the embodiments of this application, the magnitude of the temperature adjustment value is proportional to the magnitude of the temperature difference. The larger the temperature difference, the larger the temperature adjustment value, and the smaller the temperature difference, the smaller the temperature adjustment value.

[0088] In some examples, there is a mapping relationship between different temperature differences and different temperature adjustment values, and the temperature adjustment value can be determined based on the temperature difference.

[0089] In some examples, the temperature difference can be substituted as a parameter into a pre-established formula for calculating the temperature regulation value to obtain the temperature regulation value.

[0090] It is understood that the degree of change that the operating parameters of the second temperature zone need to be adjusted can be determined based on the temperature adjustment value. In this embodiment, the current operating parameters of the first temperature zone can be used as a basis, and the temperature adjustment value can be superimposed to obtain the first adjustment parameter.

[0091] For example, assuming the control temperature of the third temperature zone is 28°C and the control temperature of the first temperature zone is 24°C, the temperature difference is -4°C. Based on this temperature difference, the temperature adjustment value is determined to be -2°C, and the first adjustment parameter corresponding to the control temperature of the second temperature zone can be adjusted to 22°C. Assuming the control temperature of the third temperature zone is 21°C and the control temperature of the first temperature zone is 26°C, the temperature difference is 5°C. Based on this temperature difference, the temperature adjustment value is determined to be 2.5°C, and the first adjustment parameter corresponding to the control temperature of the second temperature zone can be adjusted to 28.5°C.

[0092] In the above embodiments, the temperature adjustment value is determined based on the temperature difference, and the first adjustment parameter is further determined by combining the current operating parameters of the temperature control component corresponding to the first temperature zone. This enables fine control of the operating parameters of the temperature control component corresponding to the second temperature zone.

[0093] In this embodiment of the application, the temperature control method may further include the following: Step S1043: Determine the second adjustment parameter based on the temperature difference.

[0094] Step S1044: Adjust the current operating parameters of the temperature control component corresponding to the third temperature zone according to the second adjustment parameter.

[0095] It is understandable that the temperature effect is bidirectional. When the operating parameters of the temperature control component in the second temperature zone are synchronously configured to the current operating parameters of the temperature control component in the first temperature zone, the temperature change will also affect the temperature of the third temperature zone. In this embodiment, in order to reduce the influence of the temperature change of the adjacent second temperature zone on the temperature of the third temperature zone, the current operating parameters of the temperature control component in the third temperature zone will also be adjusted.

[0096] In this embodiment, a second adjustment parameter can be determined based on the temperature difference. Here, the second adjustment parameter can refer to the value reached after adjustment of the current operating parameters of the temperature control component corresponding to the desired third temperature zone, which is determined based on the temperature difference. It is understood that the second adjustment parameter corresponds to the adjustable operating parameters of the temperature control component corresponding to the third temperature zone. In this embodiment, the second adjustment parameter may include, but is not limited to, the adjusted supply air temperature and the adjusted air volume. In some examples, the second adjustment parameter may also include the opening angle of the air conditioning vent, the controlled temperature, etc.

[0097] Regarding the process of determining the first adjustment parameter, in one possible implementation, the temperature difference and the current operating parameters of the third temperature zone can be input into the parameter generation model to obtain the second adjustment parameter.

[0098] In the above embodiments, a second adjustment parameter for the temperature control component used to adjust the third temperature zone is determined based on the temperature difference, and the third temperature zone is adjusted based on the second adjustment parameter, thereby reducing the influence of temperature changes in the adjacent second temperature zone on the temperature of the third temperature zone and improving the user experience.

[0099] In some embodiments, the temperature of each temperature zone can be monitored, and it can be detected whether the actual temperature of each temperature zone is consistent with its control temperature. If they are inconsistent, the temperature control components of each temperature zone can be adjusted in real time according to the difference between the actual temperature and the control temperature, so as to ensure that the temperature of each temperature zone can reach its set control temperature.

[0100] The following describes the application of the embodiments of this application in a real-world scenario.

[0101] Most current car models use one-click temperature zone synchronization, which synchronizes all temperature zones with the driver's side when activated, and does not allow individual or arbitrary temperature zone synchronization. Personalized temperature zone synchronization allows users to customize the temperature zones to be synchronized, as well as synchronize air conditioning on / off, temperature value, fan speed, AUTO mode, and mode. It can cover all user scenarios and can remember account information, making it more user-friendly.

[0102] In addition, this personalized temperature zone synchronization function will intelligently control the temperature according to the selected synchronized temperature zone after the user turns it on, by adjusting the direction of the electric air vent and the outlet temperature.

[0103] The following two main scenarios demonstrate how a more humane and warmer cabin air conditioning experience can be provided to users.

[0104] 1) When a family goes on a road trip, the outdoor sun is strong and the temperature is high. The sunshades on the roof and side windows of the rear seats are closed. The front seats are exposed to direct sunlight through the windshield, resulting in a large temperature difference between the front and rear seats. At this time, the family members in the back seats have already adjusted the temperature and airflow to a very comfortable state. The driver feels that the front seats are too hot, so he only needs to adjust the front seat temperature to lower the temperature of the driver and passenger seats. In this situation, if the passenger is an elderly person with difficulty operating the vehicle or is asleep, it is very necessary to synchronize only the needs of the front seats. This can save the driver multiple operation steps and will not interfere with the temperature settings that have already been adjusted in the rear seats.

[0105] 2) When entertaining business guests, the boss or business partner sits in the back seat, while the front passenger seat may be empty. The users in the back seat do not want their temperature and airflow in their area to be excessively interfered with, and they need to have a sense of independence and dignity. At this time, if the driver wants to quickly control the temperature / airflow / mode / on / off / AUTO of the front seats, they only need to press a front seat temperature zone synchronization button, without having to operate the temperature and other settings of the front passenger seat multiple times.

[0106] 3) When it is inconvenient to adjust the temperature and airflow while driving from the driver's seat, the front passenger or rear passenger needs to help adjust the temperature in the driver's seat. The front passenger or rear passenger only needs to select their own temperature zone, and the temperature zone in the driver's seat will be adjusted accordingly, increasing the user's usage scenarios.

[0107] In view of this, the technical problems of existing vehicles in terms of temperature zone synchronization can be identified as follows.

[0108] 1) The existing multi-temperature zone air conditioning synchronization function of vehicles is rigid: it is either synchronized throughout the whole vehicle or completely independent, and cannot be customized or selected to follow any temperature zone for synchronization.

[0109] 2) Synchronization status cannot be remembered across sessions, and different users need to repeat the operation. 3) The synchronization logic is missing in special modes, and modes such as on / off cannot be synchronized, resulting in a fragmented experience.

[0110] 4) When the user selects the second row left and driver's seat to be synchronized, but the second row right passenger seat and other temperature zones are not synchronized, if the temperature settings of the driver's seat and second row left and other temperature zones deviate significantly, the temperature zone of the second row right passenger seat will be more affected.

[0111] Based on the aforementioned technical issues, this application provides a temperature synchronization control method, including: adding a drop-down menu "Custom Synchronization Temperature Zone Switch": allowing selection of any temperature zone for the front passenger seat, second row left, second row right, and third row, as well as any temperature zone for synchronization, and supporting custom selection of any temperature zone for synchronization with the driver's seat; simultaneously, for ease of operation, a "One-Click Synchronization Master Switch" is also provided, which restores the previously memorized synchronization state (associated with user ID or vehicle) after being turned on; to cover all user usage scenarios, reduce user operation steps, improve driving safety, and make the system more user-friendly.

[0112] Compared to related technologies, the temperature synchronization control method provided in this application adds the following functions, specifically including: 1. Added a drop-down menu "Custom Synchronization Temperature Zone Switch" to support user-defined selection of temperature zones to synchronize with any other temperature zone. For example, the drop-down menu allows selection of synchronization status for the driver's seat, front passenger seat, second row left, second row right, and third row. Blue indicates that the zone is selected to follow the adjustment. The first selected temperature zone (equivalent to the aforementioned first temperature zone) is the temperature zone being followed, and other selected temperature zones (equivalent to the aforementioned second temperature zone) must be synchronized with the first selected temperature zone. The synchronization status of each temperature zone can be visually displayed externally.

[0113] 2. Add "Identity (ID) Memory". When a user logs in with their ID, the synchronization status is bound to that ID. The synchronization status is remembered based on the current user's temperature zone synchronization settings (equivalent to the aforementioned current synchronization control relationship). When switching IDs, the temperature zone synchronization status is automatically updated based on the remembered status. When the ID is not logged in, it is bound to the vehicle and remembered along with the vehicle.

[0114] For example, when switching accounts (Account 1 → Account 2), the temperature zone synchronization state of Account 1 is remembered; when the account is switched back to Account 1, the remembered temperature zone synchronization state is restored, and the temperature zone synchronization settings before switching to Account 2 are remembered.

[0115] 3. Add synchronized intelligent temperature control. For example, when cooling, the driver's seat and second-row left side are simultaneously set to 28°C, while the passenger seat and second-row right side are independently set to 24°C and 25°C respectively. In this case, the airflow from the driver's seat second-row left-side vent will be redirected to the left, and the airflow volume will be appropriately increased, with the air temperature controlled at the target outlet temperature +2°C. Similarly, the airflow from the passenger seat and second-row right-side vents will be redirected to the right, with the air temperature controlled at the target outlet temperature -2°C. This ensures that different temperature zones do not interfere with each other. This strategy only applies in automatic mode with the electric air vents set to automatic direction; user-manual adjustments are not allowed. (All parameters can be calibrated.) The temperature synchronization control method provided in this application embodiment may specifically include the following control steps: a. When temperature zone synchronization is enabled, the driver's zone's air conditioning switch, temperature, fan speed, automatic mode, and mode status will be synchronized to the synchronized temperature zone. Adjusting the air conditioning switch, temperature, fan speed, automatic mode, and mode status of the first selected temperature zone will cause the synchronized temperature zone to change accordingly. When temperature zone synchronization is disabled, the fourth / fifth temperature zones are controlled independently. Adjusting the air conditioning status of any one temperature zone will not affect the other temperature zones. In other words, simply adjust the air conditioning status of the selected temperature zone to match the air conditioning status of the first selected temperature zone.

[0116] b. The temperature zone synchronization switch is divided into "One-button synchronization master switch" and "Custom synchronization temperature zone switch" (selectable for front passenger seat, second row left, second row right, and third row). Clicking the external "One-button synchronization master switch" will restore the temperature zone synchronization to the previously memorized state (user ID login requires the ID to be remembered). For vehicles that have not logged in with a user ID, the synchronization state before the engine was turned off will be recorded as the previous memorized state.

[0117] c. Temperature zone synchronization can be activated by turning on the air conditioner via the external master synchronization switch or pull-down switch. The air conditioner in the synchronized temperature zone must be turned on. Furthermore, the master synchronization switch must be turned on whenever any temperature zone is in synchronization mode.

[0118] d. When the entire vehicle's air conditioning is turned off while the temperature zone is in synchronized state, and the air conditioning is turned on again through any air conditioning switch / corresponding setting of the synchronized temperature zone (excluding the first selected temperature zone), the temperature zone synchronization state will be exited and the corresponding temperature zone's air conditioning will be turned on. (When the entire vehicle's air conditioning is turned off while the temperature zone is in synchronized state, and the first selected temperature zone's air conditioning is turned on again through adjusting the corresponding settings, the synchronized temperature zone's air conditioning will also need to be turned on, and the relevant settings will be restored to the previous state.)

[0119] e. When one-touch ventilation, rapid heating / cooling, manual air purification, and automatic air purification are activated in synchronized temperature zone mode, these functions will remain active. Rapid heating / cooling synchronizes all temperature zones. If rapid heating / cooling was not synchronized before activation, the temperature zone synchronization status must be updated to synchronize all temperature zones.

[0120] The innovative features of this application's embodiments compared to related technologies include: covering more user scenarios, improving user experience through intelligent and precise temperature control of different temperature zones, adding synchronization status to follow user ID memory, reducing user operation steps, adding functions, and making it more convenient to use.

[0121] Based on the foregoing embodiments, this application provides a temperature control device, which includes various units and modules included in each unit. It can be implemented by a processor in a computer device; of course, it can also be implemented by specific logic circuits. In the implementation process, the processor can be a central processing unit (CPU), a microprocessor unit (MPU), a digital signal processor (DSP), or a field programmable gate array (FPGA), etc.

[0122] Figure 4 This is a schematic diagram of the composition of a temperature control device provided in an embodiment of this application, as shown below. Figure 4 As shown, the temperature control device 400 includes: a synchronization determination module 401, a parameter acquisition module 402, a synchronization configuration module 403, and an adjustment module 404, wherein: Synchronization determination module 401 is used to determine the first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone in response to the temperature zone synchronization command. The parameter acquisition module 402 is used to acquire the current operating parameters of the temperature control component corresponding to the first temperature zone; The synchronization configuration module 403 is used to synchronize and configure the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters corresponding to the first temperature zone. The adjustment module 404 is used to adjust the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone after the operating parameters of the temperature control component corresponding to the second temperature zone have been synchronously configured.

[0123] In some embodiments, the current operating parameters corresponding to the first temperature zone include at least the current control temperature of the temperature control component corresponding to the first temperature zone, and the adjustment module 404 includes: The difference determination unit is used to determine the temperature difference between the control temperature of the first temperature zone and the control temperature of the third temperature zone. The dynamic adjustment unit is used to adjust the current operating parameters of the temperature control component corresponding to the second temperature zone according to the temperature difference.

[0124] In some embodiments, the dynamic adjustment unit is specifically used to perform: Based on the temperature difference and the current operating parameters of the temperature control component corresponding to the first temperature zone, the first adjustment parameter is determined. The first adjustment parameter includes at least the adjusted supply air temperature and the adjusted air volume. Adjust the operating parameters of the temperature control component corresponding to the second temperature zone according to the first adjustment parameter.

[0125] In some embodiments, the dynamic adjustment unit is further configured to perform: The temperature adjustment value is determined based on the temperature difference, and the magnitude of the temperature adjustment value is directly proportional to the magnitude of the temperature difference. The first adjustment parameter is determined based on the temperature adjustment value and the current operating parameters of the temperature control component corresponding to the first temperature zone.

[0126] In some embodiments, the adjustment module 404 further includes: The third temperature zone adjustment unit is used to determine the second adjustment parameter based on the temperature difference; and to adjust the current operating parameters of the temperature control component corresponding to the third temperature zone based on the second adjustment parameter.

[0127] In some embodiments, the temperature control device 400 further includes: The synchronization binding module is used to generate the current synchronization control relationship based on the temperature zone information corresponding to the first temperature zone and the temperature zone information corresponding to the second temperature zone; obtain the currently logged-in user account information; and update the synchronization control relationship bound to the user account information according to the current synchronization control relationship. The synchronization control relationship bound to the user account information is used to generate temperature zone synchronization instructions after the user account information logs in.

[0128] In some embodiments, the temperature control device 400 further includes: The information acquisition module is used to acquire the temperature zone information of the first temperature zone and the temperature zone information of the second temperature zone input by the user through the temperature zone selection control on the current display interface; The synchronization acquisition module is used to acquire the synchronization commands input by the user through the synchronization control controls on the currently displayed interface; The instruction generation module is used to generate temperature zone synchronization instructions based on the temperature zone information of the first temperature zone, the temperature zone information of the second temperature zone, and the synchronization instructions.

[0129] In some embodiments, the temperature control device 400 further includes: The state switching response module is used to detect a state switching of the temperature control component corresponding to each temperature zone, and respond to the adjustment command to adjust the temperature control component corresponding to any temperature zone, and determine the target temperature zone corresponding to the adjustment command based on the adjustment command. The initialization module is used to initialize the synchronization control relationship for each temperature zone if the target temperature zone is not the first temperature zone. The configuration module is used to synchronously configure the operating parameters of the temperature control components corresponding to each second temperature zone according to the current operating parameters of the first temperature zone if the target temperature zone is the first temperature zone.

[0130] In some embodiments, the temperature control device 400 further includes: The target function execution module is used to detect the synchronization control relationship between each temperature zone in response to the target function selection instruction. If there is at least one independent temperature zone that does not have a synchronization control relationship with other temperature zones, an overall synchronization instruction is generated based on the temperature zone information corresponding to each temperature zone. Based on the overall synchronization instruction and the target function selection instruction, the module controls the functional components corresponding to each temperature zone to execute the target function corresponding to the target function selection instruction.

[0131] It should be noted that, in the embodiments of this application, if the above-described temperature control method is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiments of this application, or the part that contributes to the related technology, can be embodied in the form of a software product. This software product is stored in a storage medium and includes several instructions to cause a computer device (in the embodiments of this application, the computer device can be a vehicle) to execute all or part of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, mobile hard drives, read-only memory (ROM), magnetic disks, or optical disks. Thus, the embodiments of this application are not limited to any specific hardware, software, or firmware, or any combination of hardware, software, and firmware.

[0132] This application provides a computer device, which may be a vehicle, wherein the processor executes the program to implement some or all of the steps in the above method.

[0133] This application provides a computer-readable storage medium storing a computer program thereon, which, when executed by a processor, implements some or all of the steps in the above-described method. The computer-readable storage medium can be transient or non-transient.

[0134] This application provides a computer program including computer-readable code, wherein when the computer-readable code is run in a computer device, a processor in the computer device performs some or all of the steps in the above-described method.

[0135] This application provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program. When the computer program is read and executed by a computer, it implements some or all of the steps in the above-described method. This computer program product can be implemented specifically through hardware, software, or a combination thereof. In some embodiments, the computer program product is specifically embodied as a computer storage medium; in other embodiments, the computer program product is specifically embodied as a software product, such as a software development kit (SDK), etc.

[0136] It should be noted that the descriptions of the various embodiments above tend to emphasize the differences between them, while their similarities or commonalities can be referred to interchangeably. The descriptions of the above embodiments of the device, storage medium, computer program, and computer program product are similar to the descriptions of the above method embodiments and have similar beneficial effects. For technical details not disclosed in the embodiments of the device, storage medium, computer program, and computer program product of this application, please refer to the descriptions of the method embodiments of this application for understanding.

[0137] Figure 5 This application provides a hardware entity diagram of a computer device as an embodiment of the present application, such as... Figure 5 As shown, the hardware entity of the computer device 500 includes: a processor 501, a communication interface 502, and a memory 503, wherein: The processor 501 executes the program to implement the steps of any of the above-mentioned model adjustment methods. The processor 501 typically controls the overall operation of the computer device 500.

[0138] Communication interface 502 enables computer devices to communicate with other terminals or servers via a network.

[0139] The memory 503 is configured to store instructions and applications executable by the processor 501, and can also cache data to be processed or already processed (e.g., image data, audio data, voice communication data, and video communication data) in the processor 501 and various modules in the computer device 500. It can be implemented using flash memory or random access memory (RAM). Data transfer between the processor 501, the communication interface 502, and the memory 503 can be performed via bus 504.

[0140] This application provides a computer storage medium storing one or more programs that can be executed by one or more processors to implement the steps of the model adjustment method as described in any of the above embodiments.

[0141] It should be noted that the descriptions of the storage medium and device embodiments above are similar to the descriptions of the method embodiments above, and have similar beneficial effects. For technical details not disclosed in the storage medium and device embodiments of this application, please refer to the descriptions of the method embodiments of this application for understanding.

[0142] The aforementioned processor can be at least one of the following: Application Specific Integrated Circuit (ASIC), Digital Signal Processor (DSP), Digital Signal Processing Device (DSPD), Programmable Logic Device (PLD), Field Programmable Gate Array (FPGA), Central Processing Unit (CPU), Controller, Microcontroller, and Microprocessor. It is understood that other electronic devices can also implement the functions of the aforementioned processor, and this application does not specifically limit the specific implementation.

[0143] The aforementioned computer storage media / memory can be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), magnetic random access memory (FRAM), flash memory, magnetic surface memory, optical disc, or compact disc read-only memory (CD-ROM), etc.; or it can be various terminals that include one or any combination of the above-mentioned memories, such as mobile phones, computers, tablet devices, personal digital assistants, etc.

[0144] The above description is merely an embodiment of this application, but the scope of protection of this application is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application.

Claims

1. A temperature control method, characterized in that, The method includes: In response to a temperature zone synchronization command, a first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone are determined; Obtain the current operating parameters of the temperature control component corresponding to the first temperature zone; The operating parameters of the temperature control component corresponding to the second temperature zone are configured synchronously according to the current operating parameters corresponding to the first temperature zone; After the operating parameters of the temperature control component corresponding to the second temperature zone are synchronized and configured, if a third temperature zone adjacent to the second temperature zone is detected, the temperature control component corresponding to the second temperature zone is adjusted according to the control temperature of the third temperature zone.

2. The method according to claim 1, characterized in that, The current operating parameters corresponding to the first temperature zone include at least the current control temperature of the temperature control component corresponding to the first temperature zone. If a third temperature zone adjacent to the second temperature zone is detected, adjusting the temperature control component corresponding to the second temperature zone based on the control temperature of the third temperature zone includes: If a third temperature zone adjacent to the second temperature zone is detected, the temperature difference between the control temperature of the first temperature zone and the control temperature of the third temperature zone is determined. Adjust the current operating parameters of the temperature control component corresponding to the second temperature zone according to the temperature difference.

3. The method according to claim 2, characterized in that, The step of adjusting the current operating parameters of the temperature control component corresponding to the second temperature zone based on the temperature difference includes: Based on the temperature difference and the current operating parameters of the temperature control component corresponding to the first temperature zone, a first adjustment parameter is determined. The first adjustment parameter includes at least the adjusted supply air temperature and the adjusted air volume. Adjust the operating parameters of the temperature control component corresponding to the second temperature zone according to the first adjustment parameter.

4. The method according to claim 3, characterized in that, The step of determining the first adjustment parameter based on the temperature difference and the current operating parameters of the temperature control component corresponding to the first temperature zone includes: A temperature adjustment value is determined based on the temperature difference, and the magnitude of the temperature adjustment value is proportional to the magnitude of the temperature difference. The first adjustment parameter is determined based on the temperature adjustment value and the current operating parameters of the temperature control component corresponding to the first temperature zone.

5. The method according to claim 2, characterized in that, The method further includes: The second adjustment parameter is determined based on the temperature difference value; The current operating parameters of the temperature control component corresponding to the third temperature zone are adjusted according to the second adjustment parameter.

6. The method according to any one of claims 1 to 5, characterized in that, The method further includes: Based on the temperature zone information corresponding to the first temperature zone and the temperature zone information corresponding to the second temperature zone, the current synchronization control relationship is generated. Get the currently logged-in user account information; The synchronization control relationship bound to the user account information is updated according to the current synchronization control relationship. The synchronization control relationship bound to the user account information is used to generate a temperature zone synchronization command after the user account information logs in.

7. The method according to any one of claims 1 to 5, characterized in that, The method further includes: The temperature zone information of the first temperature zone and the temperature zone information of the second temperature zone are obtained by the user through the temperature zone selection control on the current display interface. The synchronization command input by the user is obtained through the synchronization control control on the current display interface; The temperature zone synchronization instruction is generated based on the temperature zone information of the first temperature zone, the temperature zone information of the second temperature zone, and the synchronization instruction.

8. The method according to any one of claims 1 to 5, characterized in that, The method further includes: When a state switch is detected in the temperature control components corresponding to each temperature zone, in response to an adjustment command to adjust the temperature control components corresponding to any temperature zone, the target temperature zone corresponding to the adjustment command is determined according to the adjustment command. If the target temperature zone is not the first temperature zone, then the synchronization control relationship corresponding to each temperature zone is initialized; If the target temperature zone is the first temperature zone, then the operating parameters of the temperature control components corresponding to each second temperature zone are configured synchronously according to the current operating parameters corresponding to the first temperature zone.

9. The method according to any one of claims 1 to 5, characterized in that, The method further includes: In response to the target function selection command, the synchronous control relationship between each temperature zone is detected; If there is at least one independent temperature zone that does not have the synchronization control relationship with the other temperature zones in the temperature zone, then an overall synchronization command is generated based on the temperature zone information corresponding to each temperature zone. Based on the overall synchronization command and the target function selection command, control the functional components corresponding to each temperature zone to execute the target function corresponding to the target function selection command.

10. A temperature control device, characterized in that, The device includes: A synchronization determination module is used to determine, in response to a temperature zone synchronization command, a first temperature zone to be followed and at least one second temperature zone synchronized with the first temperature zone. The parameter acquisition module is used to acquire the current operating parameters of the temperature control component corresponding to the first temperature zone; The synchronization configuration module is used to synchronize and configure the operating parameters of the temperature control component corresponding to the second temperature zone according to the current operating parameters corresponding to the first temperature zone. The adjustment module is used to adjust the temperature control component corresponding to the second temperature zone according to the control temperature of the third temperature zone after the operating parameters of the temperature control component corresponding to the second temperature zone have been synchronously configured.